Sort by
Refine Your Search
-
Category
-
Country
-
Employer
- Delft University of Technology (TU Delft)
- Eindhoven University of Technology (TU/e)
- Forschungszentrum Jülich
- University of Primorska
- Aalborg University
- CNRS
- Deutsches Elektronen-Synchrotron DESY
- ETH Zürich
- Heriot Watt University
- Inria, the French national research institute for the digital sciences
- Institute of Photonic Sciences
- KU LEUVEN
- Kaunas University of Technology
- NTNU - Norwegian University of Science and Technology
- NTNU Norwegian University of Science and Technology
- Poznan University of Physical Education, POLAND
- The University of Newcastle
- University of Antwerp
- University of Birmingham
- University of Luxembourg
- Università degli Studi di Brescia
- 11 more »
- « less
-
Field
-
intestinal wall, and how. You will design, microfabricate and characterise an actuator that delivers a mechanical stimulus to intestinal tissue with independent control over vibration parameters to exploit
-
-frequency characterisation. Investigate and minimise measurement artefacts associated with grounding, shielding, impedance, parasitic effects, noise and signal integrity. Characterise and compare different
-
PhD Position - Operando X-ray Characterization of Catalytic Interfaces for Chemical Hydrogen Storage
, where useful, complementary methods such as microscopy, X-ray scattering/reflection, vibrational spectroscopy, or modelling. Prepare beamtime proposals, publish results in peer-reviewed journals, and
-
an error, GNSS-IR analyses variations in signal-to-noise ratio (SNR/CN0), phase and related observables caused by interaction of the GNSS signal with the land surface. These reflected signals contain
-
to cases with low signal-to-noise ratio and low-power operation. A first research direction will focus on investigating innovative energy harvesting techniques aimed at powering sensors without the use
-
these aircraft share the airspace with conventional traffic, and what that would mean for air traffic control and safety. This is exactly what this PhD project aims to answer! The primary focus of the research
-
an exceptional know-how and experimental methodology, in a high-level scientific environment. The context of frequency metrology requires to master and control the noise sources of the experimental setup as
-
of classical telecom networks for quantum communication and networking. In contrast to classical optical signals, quantum states are extremely fragile and degrade rapidly due to loss, noise, and decoherence
-
sciences, biomedical engineering, or psychology; good command of English (minimum B2 level); proficiency in using data analysis software (familiarity with Spike2 software is an additional asset); basic
-
introducing narrow-bandwidth active noise compensation. RF field feedback can be further enhanced by investigating variable-gain controllers that adapt to cavity detuning, or exploring other feedback algorithms